闭环辨识及多数据集对参数估计的影响:一个实验室规模的工业过程

A. Sumalatha, A. Bhujanga Rao
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摘要

本文介绍了传统闭环系统辨识技术的应用和实验室规模级过程动态模型的建立。本文主要研究如何从实时闭环实验数据中识别参数模型。在本文中,重点讨论了使用LabVIEW系统识别工具包对模型估计的不同干扰和产生的数据集的影响。讨论了不同模型得到的系数的比较以及多数据集对估计的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Closed loop identification and effect of multiple datasets on parameter estimation : A laboratory scale industrial process
This paper describes the application of traditional closed loop system identification techniques and development of dynamic model of a laboratory scale level process. Present work is concerned with the identification of parametric model from real time closed loop experimental data. In this paper the main emphasis is given on the effect of different disturbances and the resultant data sets on model estimation using LabVIEW system Identification toolkit. Comparison of coefficients obtained from different models and effect of multiple datasets on estimation is discussed.
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